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1. Special Observing Period (SOP) data for the Year of Polar Prediction site Model Intercomparison Project (YOPPsiteMIP).

2. Merged Observatory Data Files (MODFs): an integrated observational data product supporting process-oriented investigations and diagnostics.

3. Contrasting extremely warm and long-lasting cold air anomalies in the North Atlantic sector of the Arctic during the HALO-(AC)3 campaign.

4. Merged Observatory Data Files (MODFs): An Integrated Observational Data Product Supporting Process-Oriented Investigations and Diagnostics.

5. Annual cycle of aerosol properties over the central Arctic during MOSAiC 2019–2020 – light-extinction, CCN, and INP levels from the boundary layer to the tropopause.

6. Environmental conditions in the North Atlantic sector of the Arctic during the HALO–(AC)³ campaign.

7. Conditions favorable for secondary ice production in Arctic mixed-phase clouds.

8. The foehn effect during easterly flow over Svalbard.

9. Atmospheric rivers and associated precipitation patterns during the ACLOUD and PASCAL campaigns near Svalbard (May–June 2017): case studies using observations, reanalyses, and a regional climate model.

10. Case study of a moisture intrusion over the Arctic with the ICOsahedral Non-hydrostatic (ICON) model: resolution dependence of its representation.

11. The unexpected smoke layer in the High Arctic winter stratosphere during MOSAiC 2019–2020.

12. Wildfire smoke, Arctic haze, and aerosol effects on mixed-phase and cirrus clouds over the North Pole region during MOSAiC: an introduction.

13. Atmospheric rivers and associated precipitation patterns during the ACLOUD/PASCAL campaigns near Svalbard (May-June 2017): case studies using observations, reanalyses, and a regional climate model.

14. Case study of a moisture intrusion over the Arctic with the ICON model: resolution dependence of its representation.

15. GNSS-based water vapor estimation and validation during the MOSAiC expedition.

16. Application of cloud particle sensor sondes for estimating the number concentration of cloud water droplets and liquid water content: case studies in the Arctic region.

17. A systematic assessment of water vapor products in the Arctic: from instantaneous measurements to monthly means.

18. Foehn effect during easterly flow over Svalbard.

19. Siberian fire smoke in the High-Arctic winter stratosphere observed during MOSAiC 2019-2020.

20. Advanced method for estimating the number concentration of cloud water and liquid water content observed by cloud particle sensor sondes.

21. A systematic assessment of water vapor products in the Arctic: fronstantaneous measurements to monthly means.

22. UTLS wildfire smoke over the North Pole region, Arctic haze, and aerosol-cloud interaction during MOSAiC 2019/20: An introductory.

23. The influence of water vapor anomalies on clouds and their radiative effect at Ny-Ålesund.

24. Low-level mixed-phase clouds in a complex Arctic environment.

25. The influence of anomalous atmospheric conditions at Ny-Ålesund on clouds and their radiative effect.

26. Diurnal cycle of iodine, bromine, and mercury concentrations in Svalbard surface snow.

27. Low-level mixed-phase clouds in a complex Arctic environment.

28. Diurnal cycle of iodine and mercury concentrations in Svalbard surface snow.

29. Classification of Arctic multilayer clouds using radiosonde and radar data in Svalbard.

30. Statistics on clouds and their relation to thermodynamic conditions at Ny-Ålesund using ground-based sensor synergy.

31. Meteorological conditions during the ACLOUD/PASCAL field campaign near Svalbard in early summer 2017.

32. Statistics on clouds and their relation to thermodynamic conditions at Ny-Ålesund using ground-based sensor synergy.

33. Twenty-five years of cloud base height measurements by ceilometer in Ny-Ålesund, Svalbard.

34. Classification of Arctic multilayer clouds using radiosoundings and radar data.

35. In-situ sounding of radiation flux profiles through the Arctic lower troposphere.

36. Synoptic development during the ACLOUD/PASCAL field campaign near Svalbard in spring 2017.

37. 25 years of Cloud Base Height Measurements by Ceilometer in Ny Ålesund, Svalbard.

38. Baseline Surface Radiation Network (BSRN): structure and data description (1992-2017).

39. Vertical profiles of aerosol and black carbon in the Arctic: a seasonal phenomenology along 2 years (2011-2012) of field campaigns.

40. Vertical profiles of aerosol and black carbon in the Arctic: a seasonal phenomenology along two years (2011-2012) of field campaign.

41. Surface radiation during the total solar eclipse over Ny-Ålesund, Svalbard, on 20 March 2015.

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